Remote Bio-Sensing: Open Source Benchmark Framework for Fair Evaluation of rPPG
Dae-Yeol Kim, Eunsu Goh, KwangKee Lee, JongEui Chae, JongHyeon Mun,, Junyeong Na, Chae-bong Sohn, Do-Yup Kim

TL;DR
This paper introduces an open-source benchmarking framework for rPPG that enables fair evaluation of different methods across diverse datasets, addressing reproducibility issues and advancing the field.
Contribution
It provides a comprehensive, standardized benchmarking framework for rPPG techniques, facilitating fair comparison and reproducibility across multiple datasets.
Findings
Benchmarking reveals performance variations across datasets.
Open-source framework enhances reproducibility and fair evaluation.
Supports both traditional and deep learning rPPG methods.
Abstract
rPPG (Remote photoplethysmography) is a technology that measures and analyzes BVP (Blood Volume Pulse) by using the light absorption characteristics of hemoglobin captured through a camera. Analyzing the measured BVP can derive various physiological signals such as heart rate, stress level, and blood pressure, which can be applied to various applications such as telemedicine, remote patient monitoring, and early prediction of cardiovascular disease. rPPG is rapidly evolving and attracting great attention from both academia and industry by providing great usability and convenience as it can measure biosignals using a camera-equipped device without medical or wearable devices. Despite extensive efforts and advances in this field, serious challenges remain, including issues related to skin color, camera characteristics, ambient lighting, and other sources of noise and artifacts, which…
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Taxonomy
TopicsNon-Invasive Vital Sign Monitoring · Optical Imaging and Spectroscopy Techniques · Hemodynamic Monitoring and Therapy
